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Updated: Jul 3, 2025

Detection of Small GTPase Prenylation and GTP Binding Using Membrane Fractionation and GTPase-linked Immunosorbent Assay
Published on: November 11, 2018
GTP-Bound N-Ras Conformational States and Substates Are Modulated by Membrane and Point Mutation
Alexandra Farcas1, Lorant Janosi1
1Department of Molecular and Biomolecular Physics, National Institute for Research and Development of Isotopic and Molecular Technologies, 67-103 Donat Street, 400293 Cluj-Napoca, Romania.
Oncogenic N-Ras proteins exhibit a new conformational substate, influencing cancer development. This discovery reveals how mutations disrupt normal Ras protein function and highlights the membrane's role in Ras signaling.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Ras proteins, including N-Ras, exist in multiple conformational states crucial for their function.
- The GTP-bound state of Ras proteins is typically classified into two main states: inactive (state 1) and active (state 2).
- Previous studies on H-Ras identified two substates within the active state, differentiated by the orientation of Tyrosine 32 (Tyr32).
Purpose of the Study:
- To identify and characterize novel conformational substates of N-Ras.
- To investigate the impact of the G12V mutation on N-Ras conformational dynamics.
- To explore the influence of the cell membrane on N-Ras conformational states and stability.
Main Methods:
- X-ray crystallography to determine protein structures.
- Molecular dynamics simulations to analyze protein dynamics and membrane interactions.
- Analysis of N-Ras wild-type and G12V mutant forms.
Main Results:
- N-Ras exhibits a previously unidentified substate of the active state (state 2), characterized by a third orientation of Tyr32.
- The G12V mutation significantly increases the sampling of this novel substate in N-Ras.
- The G12V mutation prevents the sampling of the GTPase-activating protein (GAP) binding substate, thereby promoting oncogenesis.
- Molecular dynamics simulations reveal that the cell membrane profoundly influences N-Ras conformational dynamics, stability, and substate sampling.
Conclusions:
- A novel N-Ras conformational substate involving Tyr32 has been identified.
- The G12V mutation's oncogenic potential is linked to its disruption of GAP binding via altered conformational sampling.
- Membrane interactions are critical for regulating N-Ras conformational dynamics and its role in the Ras activation/deactivation cycle involving GEFs and GAPs.
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